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Relaxation Phenomena in Lithium‐Ion‐Insertion Cells
452
Citations
1
References
1994
Year
EngineeringRelaxation TimeStorage SystemsMaterials ScienceElectrical EngineeringBattery Electrode MaterialsLithium-ion BatteryLithium-ion BatteriesEnergy StorageSolid-state BatteryElectrochemistryElectric BatteryLi-ion Battery MaterialsInsertion ElectrodesRelaxation PhenomenaApplied PhysicsElectrochemical Energy StorageBatteriesAnode Materials
Relaxation phenomena in lithium‑ion‑insertion cells are modeled. The authors simulate dual lithium‑ion‑insertion cells and lithium‑foil negative electrode cells, modeling concentration‑cell and state‑of‑charge‑dependent open‑circuit potentials that drive material redistribution, analyze solid and solution concentration profiles during relaxation, and compare galvanostatic and potentiostatic charging simulations to experimental data. The model shows that relaxation after charge or discharge alters material distribution in insertion electrodes, predicts how relaxation time affects multiple cycles and peak power, and that simulated galvanostatic and potentiostatic charging agree with experimental data for a commercial battery.
Relaxation phenomena in lithium‐ion‐insertion cells are modeled. Simulation results are presented for a dual lithium‐ion‐insertion cell and for a cell using a lithium‐foil negative electrode. A period of relaxation after a charge or discharge can cause appreciable changes in the distribution of material in the insertion electrodes. Local concentration cells in the solution phase and an open‐circuit potential that depends on state of charge for the solid phase drive the redistribution of material. Concentration profiles in solid and solution phases during relaxation are analyzed, and the consequences for cell performance are discussed. The model predicts the effects of relaxation time on multiple charge‐discharge cycles and on peak power. Galvanostatic and potentiostatic charging are simulated; the results are compared to experimental data for a commercial battery.
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